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-rwxr-xr-xsrc/quikr48
1 files changed, 0 insertions, 48 deletions
diff --git a/src/quikr b/src/quikr
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index bac01ca..0000000
--- a/src/quikr
+++ /dev/null
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-#!/usr/bin/python
-import sys
-import os
-import argparse
-import quikr
-import numpy as np
-
-def main():
-
- parser = argparse.ArgumentParser(description=
- "Quikr returns the estimated frequencies of batcteria present when given a \
- input FASTA file. \n \
- A default trained matrix will be used if none is supplied \n \
- You must supply a kmer and default lambda if using a custom trained \
- matrix.")
-
- parser.add_argument("-f", "--fasta", help="fasta file", required=True)
- parser.add_argument("-o", "--output", help="output path (csv output)", required=True)
- parser.add_argument("-t", "--trained-matrix", help="trained matrix", required=True)
- parser.add_argument("-l", "--lamb", type=int, help="the default lambda value is 10,000")
- parser.add_argument("-k", "--kmer", type=int, required=True,
- help="specifies which kmer to use, must be used with a custom trained database")
-
-
- args = parser.parse_args()
-
- # our default lambda is 10,000
- lamb = 10000
-
- # Make sure our input exist
- if not os.path.isfile(args.fasta):
- parser.error( "Input fasta file not found")
-
- if not os.path.isfile(args.trained_matrix):
- parser.error("Custom trained matrix not found")
-
- # use alternative lambda
- if args.lamb is not None:
- lamb = args.lamb
-
- trained_matrix = quikr.load_trained_matrix_from_file(args.trained_matrix)
- xstar = quikr.calculate_estimated_frequencies(args.fasta, trained_matrix, args.kmer, lamb)
-
- np.savetxt(args.output, xstar, delimiter=",", fmt="%f")
- return 0
-
-if __name__ == "__main__":
- sys.exit(main())